US6875552B2

Photoresist composition and method of making

Summary by NHIP

Two-photoresist composition

The composition combines a first photoresist with a higher glass transition temperature and longer operational wavelength with a second photoresist having a lower glass transition temperature and shorter operational wavelength. Claimed glass transition temperatures range from about 80° C. to 200° C., while operational wavelengths include 248 nm, 193 nm, 157 nm, 365 nm, 405 nm, or 436 nm.

Claim Score by NHIP

Read claim 19, the broadest

Abstract

The present invention provides a photoresist composition that reduces standing wave and side wall roughness. The composition comprises a first photoresist X and a second photoresist Y. The first photoresist X absorbs at a higher wavelength than the second photoresist Y. The second photoresist Y has a lower glass transitional temperature than the first photoresist X. A method for making the photoresist composition is also provided.

US6875552B2, drawing sheet 1
Sheet 1 of 2

Term

Term ended

Expired 15 November 2022, 3.9 years ago.

  1. Priority and filed
  2. Granted
  3. Expired
  4. Today

40 claims: 7 independent, 33 dependent

  1. 1
    A photoresist composition comprising a combination of a first photoresist X and a second photoresist Y, wherein:said first photoresist X is characterized by a first glass transition temperature;said second photoresist Y is characterized by a second glass transition temperature;said second glass transition temperature is lower than said first glass transition temperature;said first photoresist X is characterized by an absorption spectrum exhibiting an operational absorption in the vicinity of a first wavelength;said second photoresist Y is characterized by an absorption spectrum exhibiting an operational absorption in the vicinity of a second wavelength;and said second wavelength is substantially shorter than said first wavelength.
  2. 19
    Broadest claimClaim Score 66, broad(NHIP)A photoresist composition comprising a combination of a first photoresist X and a second photoresist Y, wherein:said first photoresist X is characterized by a first glass transition temperature;said second photoresist Y is characterized by a second glass transition temperature;said second glass transition temperature is lower than said first glass transition temperature;said first photoresist X is characterized by an absorption spectrum exhibiting an operational absorption of about 248 nm;and said second photoresist Y is characterized by an absorption spectrum exhibiting an operational absorption of about 193 nm.
  3. 20
    A photoresist composition comprising a combination of a first photoresist X and a second photoresist Y, wherein:said first photoresist X is characterized by a first glass transition temperature;said second photoresist Y is characterized by a second glass transition temperature;said second glass transition temperature is lower than said first glass transition temperature;said first photoresist X is characterized by an absorption spectrum exhibiting an operational absorption of about 193 nm;and said second photoresist Y is characterized by an absorption spectrum exhibiting an operational absorption of about 157 nm.
  4. 21
    A photoresist composition comprising a combination of a first photoresist X and a second photoresist Y, wherein:said first photoresist X is characterized by a first glass transition temperature;said second photoresist Y is characterized by a second glass transition temperature;said second glass transition temperature is lower than said first glass transition temperature by an amount sufficient to enhance a characteristic mobility of said photoresist composition relative to a photoresist composition including only said first photoresist X;said first photoresist X is characterized by an absorption spectrum exhibiting an operational absorption in the vicinity of a first wavelength;said second photoresist Y is characterized by an absorption spectrum exhibiting an operational absorption in the vicinity of a second wavelength;and said second wavelength is substantially shorter than said first wavelength.
  5. 24
    A photoresist composition comprising a combination of a first photoresist X and a second photoresist Y, wherein:said first photoresist X is characterized by a first glass transition temperature;said second photoresist Y is characterized by a second glass transition temperature;said second glass transition temperature is lower than said first glass transition temperature;said first photoresist X is characterized by an absorption spectrum exhibiting an operational absorption in the vicinity of a first wavelength;said second photoresist Y is characterized by an absorption spectrum exhibiting an operational absorption in the vicinity of a second wavelength;said second wavelength is substantially shorter than said first wavelength;and said second photoresist Y is provided in said photoresist composition in an amount sufficient to enhance a characteristic mobility of said photoresist composition relative to a photoresist composition including only said first photoresist X.
  6. 25
    A method of forming a photoresist composition having an absorption spectrum in the vicinity of a first wavelength comprising:providing a first photoresist X, wherein said first photoresist X is characterized by a first glass transition temperature and an absorption spectrum exhibiting an operational absorption in the vicinity of a first wavelength;providing a second photoresist Y, wherein said second photoresist Y is characterized by a second glass transition temperature which is lower than said first glass transition temperature and an absorption spectrum exhibiting an operational absorption in the vicinity of a second wavelength relative to a photoresist composition including only said first photoresist X;and combining said first photoresist X with said second photoresist Y.
  7. 30
    The method as claimed in claims 25 , wherein said first glass transition temperature is greater than 130° C.